Departamento de Tecnología de Alimentos, Instituto Nacional de Investigación y Tecnología Agraria y Alimentaria (INIA-CSIC), Carretera de La Coruña Km 7.5, 28040 Madrid, Spain.
Int J Mol Sci. 2021 Aug 6;22(16):8462. doi: 10.3390/ijms22168462.
Fucosylated carbohydrates and glycoproteins from human breast milk are essential for the development of the gut microbiota in early life because they are selectively metabolized by bifidobacteria. In this regard, α-L-fucosidases play a key role in this successful bifidobacterial colonization allowing the utilization of these substrates. Although a considerable number of α-L-fucosidases from bifidobacteria have been identified by computational analysis, only a few of them have been characterized. Hitherto, α-L-fucosidases are classified into three families: GH29, GH95, and GH151, based on their catalytic structure. However, bifidobacterial α-L-fucosidases belonging to a particular family show significant differences in their sequence. Because this fact could underlie distinct phylogenetic evolution, here extensive similarity searches and comparative analyses of the bifidobacterial α-L-fucosidases identified were carried out with the assistance of previous physicochemical studies available. This work reveals four and two paralogue bifidobacterial fucosidase groups within GH29 and GH95 families, respectively. Moreover, subsp. species exhibited the greatest number of phylogenetic lineages in their fucosidases clustered in every family: GH29, GH95, and GH151. Since α-L-fucosidases phylogenetically descended from other glycosyl hydrolase families, we hypothesized that they could exhibit additional glycosidase activities other than fucosidase, raising the possibility of their application to transfucosylate substrates other than lactose in order to synthesis novel prebiotics.
人乳中的岩藻糖基化碳水化合物和糖蛋白对于早期生命中肠道微生物群的发育至关重要,因为双歧杆菌可以选择性地代谢它们。在这方面,α-L-岩藻糖苷酶在双歧杆菌的成功定植中起着关键作用,允许利用这些底物。尽管通过计算分析已经鉴定出相当数量的双歧杆菌α-L-岩藻糖苷酶,但只有少数得到了表征。迄今为止,α-L-岩藻糖苷酶根据其催化结构分为 GH29、GH95 和 GH151 三个家族。然而,属于特定家族的双歧杆菌α-L-岩藻糖苷酶在序列上存在显著差异。由于这一事实可能是不同的系统发育进化的基础,在这里,在先前可用的理化研究的帮助下,对鉴定的双歧杆菌α-L-岩藻糖苷酶进行了广泛的相似性搜索和比较分析。这项工作揭示了 GH29 和 GH95 家族中分别有四个和两个双歧杆菌岩藻糖苷酶同工酶群。此外,在每个家族中聚类的双歧杆菌岩藻糖苷酶中, 亚种 表现出最多的系统发育谱系:GH29、GH95 和 GH151。由于 α-L-岩藻糖苷酶在系统发育上来源于其他糖苷水解酶家族,我们假设它们可能具有除岩藻糖苷酶以外的其他糖苷酶活性,从而有可能将其应用于转糖基化乳糖以外的底物,以合成新型的益生元。